4.7 Article

Persistent homology of the cosmic web - I. Hierarchical topology in ΛCDM cosmologies

Journal

MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY
Volume 507, Issue 2, Pages 2968-2990

Publisher

OXFORD UNIV PRESS
DOI: 10.1093/mnras/stab2326

Keywords

methods: data analysis; large-scale structure of Universe

Funding

  1. Marie Sklodowska-Curie COFUND grant [754315]
  2. Government of Canada through the Department of Innovation, Science and Economic Development Canada
  3. Province of Ontario through the Ministry of Colleges and Universities
  4. European Research Council (ERC) under the European Union [740021]
  5. European Research Council (ERC) [740021] Funding Source: European Research Council (ERC)

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By utilizing multiscale topological data analysis tools, this study tracks the evolution of connectivity and topological structure changes in the cosmic web through Betti number curves and persistence diagrams. The persistence diagrams provide a higher level of information on the structure formation process compared to global summary statistics.
Using a set of Lambda cold dark matter simulations of cosmic structure formation, we study the evolving connectivity and changing topological structure of the cosmic web using state-of-the-art tools of multiscale topological data analysis (TDA). We follow the development of the cosmic web topology in terms of the evolution of Betti number curves and feature persistence diagrams of the three (topological) classes of structural features: matter concentrations, filaments and tunnels, and voids. The Betti curves specify the prominence of features as a function of density level, and their evolution with cosmic epoch reflects the changing network connections between these structural features. The persistence diagrams quantify the longevity and stability of topological features. In this study, we establish, for the first time, the link between persistence diagrams, the features they show, and the gravitationally driven cosmic structure formation process. By following the diagrams' development over cosmic time, the link between the multiscale topology of the cosmic web and the hierarchical buildup of cosmic structure is established. The sharp apexes in the diagrams are intimately related to key transitions in the structure formation process. The apex in the matter concentration diagrams coincides with the density level at which, typically, they detach from the Hubble expansion and begin to collapse. At that level many individual islands merge to form the network of the cosmic web and a large number of filaments and tunnels emerge to establish its connecting bridges. The location trends of the apex possess a self-similar character that can be related to the cosmic web's hierarchical buildup. We find that persistence diagrams provide a significantly higher and more profound level of information on the structure formation process than more global summary statistics like Euler characteristic or Betti numbers.

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